I Face Detection And Recognition System author: Mukund Agarwal supervisor: Professor Nishan Canagarajah Project Thesis submitted in support of the Degree of Bachelor of Engineering in Electronic and Communications Engineering


Figure 5 Difference image showing motion and non motion event



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Thesis

Figure 5 Difference image showing motion and non motion event 
If motion is detected then the new image is stored as the new background image. After this 
the algorithm moves on to the face detection module. 
Figure 6 Motion Detection Flowchart 


Mukund Agarwal 
Face Detection & Recognition System 

4 .
 
F A C E D E T E C T I O N
4 . 1 T h e o r y
4.1.1 Different types of algorithms 
There are three main approaches considered for implementing face detection. They are 
‘Neural network based face detection’, ‘Image pyramid statistical method’ and ‘Voila & Jones’. 
Each implementation is discussed below: 
1.
Neural network based face detection
6
(paper by Henry A. Rowley, Shumeet Baluja, and 
Takeo Kanade) – Faces are detected at multiple scales by calculating an image pyramid. 
Each image in that pyramid is then scanned by using a fixed size sub-window and its 
content is corrected. The correction is to make sure that the lighting is non uniform. The 
histogram is also equalized. This corrected sub window is then passed through many 
parallel neural networks. The networks decide if there are any faces in the window. All of 
these multiple outputs are passed through an AND gate to give the final result. As it’s an 
AND gate the number of false detection is reduced. 
2.
Image pyramid statistical method
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(paper by Henry Schneiderman and Takeo Kanade) – 
The basic mechanics of this algorithm is also to calculate an image pyramid and scan a 
fixed size sub-window through each layer of this pyramid. The content of the sub window 
is subjected to a wavelet analysis and histograms are made for the different wavelet 
coefficients. The orientation of the object is determined by differently trained parallel 
detectors. These detectors are trained so that they are sensitive to the different 
orientations and one which received the highest hit is considered as the best estimate of 
the actual orientation.
3.

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